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Statistical Properties of Energy Detection for Spectrum Sensing by Using Estimated Noise Variance

机译:利用估计噪声方差的频谱检测能量检测的统计特性

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In energy detection for cognitive radio spectrum sensing, the noise variance is usually assumed given, by which a threshold is set to guarantee a desired constant false alarm rate (CFAR) or a constant detection rate (CDR). However, in practical situations, the exact information of noise variance is generally unavailable to a certain extent due to the fact that the total noise consists of time-varying thermal noise, receiver noise, and environmental noise, etc. Hence, setting the thresholds by using an estimated noise variance may result in different false alarm probabilities from the desired ones. In this paper, we analyze the basic statistical properties of the false alarm probability by using estimated noise variance, and propose a method to obtain more suitable CFAR thresholds for energy detection. Specifically, we first come up with explicit descriptions on the expectations of the resultant probability, and then analyze the upper bounds of their variance. Based on these theoretical preparations, a new method for precisely obtaining the CFAR thresholds is proposed in order to assure that the expected false alarm probability can be as close to the predetermined as possible. All analytical results derived in this paper are testified by corresponding numerical experiments.
机译:在用于认知无线电频谱感测的能量检测中,通常假设噪声方差是给定的,通过该阈值设置阈值以确保所需的恒定虚警率(CFAR)或恒定检测率(CDR)。但是,在实际情况中,由于总噪声包括随时间变化的热噪声,接收器噪声和环境噪声等,因此在一定程度上通常无法获得确切的噪声方差信息。因此,通过使用估计的噪声方差可能会导致与所需的误报概率不同。在本文中,我们利用估计的噪声方差分析了虚警概率的基本统计特性,并提出了一种获取更适合的CFAR阈值进行能量检测的方法。具体来说,我们首先对结果概率的期望给出明确的描述,然后分析其方差的上限。基于这些理论准备,提出了一种精确获取CFAR阈值的新方法,以确保预期的虚警概率尽可能地接近预定值。通过相应的数值实验证明了本文得出的所有分析结果。

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